286
S. Lupica Spagnolo and B. Daniotti
Acknowledgements The research programme was carried out in collaboration with Geopietra
S.r.l.
References
Daniotti, B., Lupica Spagnolo, S., & Paolini, R. (2008). Climatic data analysis to define accelerated
ageing for reference service life evaluation. In 11DBMC International Conference on Durability
of Building Materials and Components, (May).
European Commission. (2005). COM (2005) 670 Thematic Strategy on the sustainable use for
natural resources.
Fatiguso, F., et al. (2013). Investigation and conservation of artificial stone facades of the early XX
century: A case study. Construction and Building Materials, 41, 26–36.
Franzoni, E., et al. (2013). Artificial weathering of stone by heating. Journal of Cultural Heritage,
14(3 SUPPL), 85–93. Elsevier Masson SAS.
Martínez-Martínez, J., et al. (2013). Non-linear decay of building stones during freeze-thaw weathering processes. Construction and Building Materials, 38, 443–454.
Morillas, H., et al. (2015). Nature and origin of white efflorescence on bricks, artificial stones,
and joint mortars of modern houses evaluated by portable Raman spectroscopy and laboratory
analyses. Spectrochimica Acta—Part A: Molecular and Biomolecular Spectroscopy, 136(PB),
1195–1203.
Stefanidou, M., Pachta, V., & Papayianni, I. (2015). Design and testing of artificial stone for the
restoration of stone elements in monuments and historic buildings. Construction and Building
Materials, 93, 957–965. Elsevier Ltd.
Standards
ISO 9869-1:2014 Thermal insulation—Building elements—In-situ measurement of thermal resistance and thermal transmittance heat flowmeter method.
ASTM C567-14 Standard Test Method for Determining Density of Structural Lightweight Concrete
ASTM C177-13 Standard Test Method for Steady-State Heat Flux Measurements and Thermal
Transmission Properties by Means of the Guarded-Hot-Plate Apparatus
EN 14617-1:2013 Agglomerated stone—Test methods—Part 1: Determination of apparent density
and water absorption
EN 14617-2:2016 Agglomerated stone—Test methods—Part 2: Determination of flexural strength
(bending)
EN 14617-5:2012 Agglomerated stone—Test methods—Part 5: Determination of freeze and thaw
resistance
EN 14617-15:2005 Agglomerated stone—Test methods—Part 15: Determination of compressive
strength
UNI EN 12667:2002 Prestazione termica dei materiali e dei prodotti per edilizia—Determinazione
della resistenza termica con il metodo della piastra calda con anello di guardia e con il metodo
del termoflussimetro—Prodotti con alta e media resistenza termica [Thermal performance of
building materials and products—Determination of thermal resistance by means of guarded hot
plate and heat flow meter methods—Products of high and medium thermal resistance]
S. Lupica Spagnolo and B. Daniotti
Acknowledgements The research programme was carried out in collaboration with Geopietra
S.r.l.
References
Daniotti, B., Lupica Spagnolo, S., & Paolini, R. (2008). Climatic data analysis to define accelerated
ageing for reference service life evaluation. In 11DBMC International Conference on Durability
of Building Materials and Components, (May).
European Commission. (2005). COM (2005) 670 Thematic Strategy on the sustainable use for
natural resources.
Fatiguso, F., et al. (2013). Investigation and conservation of artificial stone facades of the early XX
century: A case study. Construction and Building Materials, 41, 26–36.
Franzoni, E., et al. (2013). Artificial weathering of stone by heating. Journal of Cultural Heritage,
14(3 SUPPL), 85–93. Elsevier Masson SAS.
Martínez-Martínez, J., et al. (2013). Non-linear decay of building stones during freeze-thaw weathering processes. Construction and Building Materials, 38, 443–454.
Morillas, H., et al. (2015). Nature and origin of white efflorescence on bricks, artificial stones,
and joint mortars of modern houses evaluated by portable Raman spectroscopy and laboratory
analyses. Spectrochimica Acta—Part A: Molecular and Biomolecular Spectroscopy, 136(PB),
1195–1203.
Stefanidou, M., Pachta, V., & Papayianni, I. (2015). Design and testing of artificial stone for the
restoration of stone elements in monuments and historic buildings. Construction and Building
Materials, 93, 957–965. Elsevier Ltd.
Standards
ISO 9869-1:2014 Thermal insulation—Building elements—In-situ measurement of thermal resistance and thermal transmittance heat flowmeter method.
ASTM C567-14 Standard Test Method for Determining Density of Structural Lightweight Concrete
ASTM C177-13 Standard Test Method for Steady-State Heat Flux Measurements and Thermal
Transmission Properties by Means of the Guarded-Hot-Plate Apparatus
EN 14617-1:2013 Agglomerated stone—Test methods—Part 1: Determination of apparent density
and water absorption
EN 14617-2:2016 Agglomerated stone—Test methods—Part 2: Determination of flexural strength
(bending)
EN 14617-5:2012 Agglomerated stone—Test methods—Part 5: Determination of freeze and thaw
resistance
EN 14617-15:2005 Agglomerated stone—Test methods—Part 15: Determination of compressive
strength
UNI EN 12667:2002 Prestazione termica dei materiali e dei prodotti per edilizia—Determinazione
della resistenza termica con il metodo della piastra calda con anello di guardia e con il metodo
del termoflussimetro—Prodotti con alta e media resistenza termica [Thermal performance of
building materials and products—Determination of thermal resistance by means of guarded hot
plate and heat flow meter methods—Products of high and medium thermal resistance]
